Video receiver with DC offset cancellation
An analog video receiver implemented in an integrated circuit device. The analog video receiver includes a mixing circuit to mix an analog video signal with a sinusoid to generate a frequency-shifted analog video signal, and an offset cancellation circuit to obtain a sample of the frequency-shifted analog video signal during a first time interval and, based on the sample, generate an offset cancellation signal that, when summed with the frequency-shifted analog video signal, reduces a substantially time-invariant offset in the frequency-shifted analog video signal.
This application claims priority from, and hereby incorporates by reference, the following U.S. Provisional Applications:
The present invention relates to the field of analog video reception.
BACKGROUNDHistorically, tuner demodulators (“tuner cans”) for video band applications have been implemented entirely in the analog domain, using up to several hundred discrete components and consuming as much as two to three watts of power. Unfortunately, despite their low cost and robust performance, power and size considerations make discrete tuner cans unsuitable for a number of emerging video applications, such as analog video reception on mobile telephones, personal digital assistants, laptop computers or other small portable devices.
To meet the demand for small, low-power tuners, designers have begun implementing tuners in silicon, in most cases with architectures that mimic the superheterodyne operation of discrete tuner cans; down-converting the carrier frequency of a desired channel to a fixed intermediate frequency (IF), then passing the IF signal through an image-rejection stage to filter spectral components at image frequencies. Unfortunately, the notoriously poor performance of integrated passives makes it difficult to achieve a satisfactory balance between image rejection and power consumption. Consequently existing silicon tuners typically exhibit either compromised performance at low power, or reasonable performance at high power.
BRIEF DESCRIPTION OF THE DRAWINGSThe present invention is illustrated by way of example, and not by way of limitation, in the figures of the accompanying drawings and in which like reference numerals refer to similar elements and in which:
In the following description and in the accompanying drawings, specific terminology and drawing symbols are set forth to provide a thorough understanding of the present invention. In some instances, the terminology and symbols may imply specific details that are not required to practice the invention. For example, the interconnection between circuit elements or circuit blocks may be shown or described as multi-conductor or single conductor signal lines. Each of the multi-conductor signal lines may alternatively be single-conductor signal lines, and each of the single-conductor signal lines may alternatively be multi-conductor signal lines. Signals and signaling paths shown or described as being single-ended may also be differential, and vice-versa. Similarly, signals described or depicted as having active-high or active-low logic levels may have opposite logic levels in alternative embodiments. As another example, circuits described or depicted as including metal oxide semiconductor (MOS) transistors may alternatively be implemented using bipolar technology or any other technology in which a signal-controlled current flow may be achieved. Also signals referred to herein as clock signals may alternatively be strobe signals or other signals that provide event timing. With respect to terminology, a signal is said to be “asserted” when the signal is driven to a low or high logic state (or charged to a high logic state or discharged to a low logic state) to indicate a particular condition. Conversely, a signal is said to be “deasserted” to indicate that the signal is driven (or charged or discharged) to a state other than the asserted state (including a high or low logic state, or the floating state that may occur when the signal driving circuit is transitioned to a high impedance condition, such as an open drain or open collector condition). A signal driving circuit is said to “output” a signal to a signal receiving circuit when the signal driving circuit asserts (or deasserts, if explicitly stated or indicated by context) the signal on a signal line coupled between the signal driving and signal receiving circuits. A signal line is said to be “activated” when a signal is asserted on the signal line, and “deactivated” when the signal is deasserted. Additionally, the prefix symbol “/” attached to signal names indicates that the signal is an active low signal (i.e., the asserted state is a logic low state). A line over a signal name (e.g., ‘{overscore (<signal name>)}’) is also used to indicate an active low signal. The term “coupled” is used herein to express a direct connection as well as connections through one or more intermediary circuits or structures. The term “exemplary” is used herein to express an example, not a preference or requirement.
An integrated analog video receiver is disclosed herein in various embodiments. In a number of embodiments, the analog video receiver includes a direct-conversion tuner that converts a broadcast-frequency analog video signal directly to baseband, rather than first down-converting to a mid-range intermediate frequency. By this operation, the image frequency is the frequency of the desired signal itself, so that the large, power-hungry channel selection filter typically stationed at the intermediate-frequency (IF) output stage of a conventional superheterodyne tuner may be replaced by a significantly smaller and lower power low-pass filter. In other embodiments, offset cancellation circuitry is provided to dynamically cancel offsets that may result from local oscillator coupling back into the signal input of the direct-conversion stage, and an IQ balance circuit is provided to adaptively reject undesired images that may result from phase and gain imbalance in the direct conversion stage. In yet other embodiments, a power management circuit is provided to power down selected components of the analog video receiver during intervals in which otherwise superfluous video information would be received. These and other embodiments and aspects of the invention are described in further detail below.
In the embodiment of
In one embodiment, the zero-IF converter 115 is a synchronous detector that multiplies the incoming analog video signal by a complex sinusoid, thus down-converting the video signal directly to baseband and producing in-phase (I) and quadrature (Q) baseband signal components that are output to the IQ Balance stage 117. In one embodiment, the complex sinusoid is generated at a frequency that matches (or substantially matches) the center frequency of the selected pass-band, a frequency referred to herein as the carrier frequency of the incoming analog video signal. It should be noted that, due to the side-band filtering applied in vestigial side-band (VSB) modulated television signals, the carrier frequency of the incoming analog video signal may be offset from the frequency of the original modulated carrier (e.g., offset by FC/2, where FC is the spectral reduction achieved by side-band filtering).
Still referring to
The audio recovery stage 105 recovers an audio output from an audio component, if any, in the output of the baseband demodulator 119 (or alternatively from the output of the IQ Balance stage 117 or zero-IF converter 115). For example, in one embodiment, the audio recovery stage 105 includes a band pass filter to pass the audio component of the baseband demodulator output and a demodulator to recover the audio output from a frequency-modulated (FM) or amplitude-modulated (AM) digital audio signal. If the audio component has not already been digitized in earlier stages, the audio recovery stage 105 may also include an analog-to-digital converter (ADC) and corresponding digital filter to generate a filtered digital representation of the audio signal. An audio trap, not shown in
Continuing with the video path, the baseband demodulator 119 outputs the recovered baseband video signal to a timing-recovery stage 135 and luma-chroma processing stage 131 within the decoder 103. The luma-chroma processing stage 131 extracts chroma (color) information, if any, from the baseband video signal and provides corresponding hue (U) and saturation (V) signals to a format conversion stage 133 along with a luma (intensity) signal (Y) that remains after the color information is extracted. In one embodiment, the format conversion stage 133 is a YUV to RGB converter that converts the incoming intensity, hue and saturation signals into red, green and blue signals for driving a color display (e.g., a cathode-ray tube (CRT), liquid crystal display (LCD), plasma display, projected display or any other type of image rendering device). In alternative embodiments, the format conversion stage 133 may convert the YUV components into another signaling format (e.g., YIV signals), or the formatting stage may be omitted and the YUV signal components used to directly drive the host-system display.
The timing recovery stage 135 (which may be viewed as part of the tuner, rather than the decoder) extracts vertical retrace and horizontal retrace timing signals, referred to herein as v-sync and h-sync signals, respectively, from the tuner-supplied video signal and outputs the timing signals to the format conversion stage 133 where they are used to delineate frames, fields and scanlines (e.g., v-sync indicating the start of each video field in a field-interlaced video signal format, and h-sync indicating the start of a scanline to be displayed as a line of pixels on the display device). In the embodiment shown, the timing recovery stage may also output timing signals (h-sync, v-sync or both) to the offset canceller 121 and/or power manager 107 to time operations therein. In one embodiment, discussed in further detail below, the power manager 107 is used to shut down (i.e., disable or otherwise place in a reduced power consumption state) selected components of the tuner 101 and decoder 103 during intervals in which superfluous video information would otherwise be received. In alternative embodiments, the power manager 107 may be omitted.
The cosine and sine signals generated by the local oscillator 151 are supplied to mixer elements 153a and 153b, respectively, where they are mixed (e.g., multiplied) with the incoming analog video signal to generate in-phase and quadrature video signals 154a and 154b. The mixer elements may be implemented, for example, by four-quadrant multiplier circuits (also called Gilbert cells) or any other circuit capable of performing a signal multiplication. The in-phase and quadrature video signals 154a and 154b are supplied to low-pass filters 157a, 157b which filter out the spectral components at 2FC (i.e., multiplication of sinusoids at frequency FC yields the desired down-converted signal at baseband (FC-FC), and undesired components at 2FC(FC+FC)), and then supplied to buffer amplifiers 159a, 159b to produce amplified I and Q baseband video signals 170a and 170b, respectively. Though not specifically shown, the I and Q signals 170a and 170b may be converted to digital signals in a video ADC stage before being output to the IQ balance stage (i.e., element 117 of
DC Offset Cancellation
One challenge presented by the direct conversion tuner 101 of
In the embodiment of
The offset canceller 230 includes a differential amplifier 231 having inputs coupled respectively to mixer output nodes 154a, 154b, and outputs coupled, via pass gates 233a, 233b to current-control transistors 237a, 237b. The pass gates 233a, 233b are switched to a conducting state in response to assertion of the blanking signal 250 so that, when the error signal is present on the mixer output nodes 154a, 154b, the differential amplifier 231 is enabled to drive the gates of current-control transistors 237a, 237b. More specifically, the differential amplifier 231 generates a differential offset cancellation voltage in proportion to the error voltage so that the current-control transistors 237a, 237b are biased to drive a differential, offset cancellation current (In1, In2) onto the mixer output nodes 154a, 154b. The source terminals of the current-control transistors 237a, 237b are cross-coupled to the mixer output nodes 154a, 154b (i.e., transistor 237 a coupled to output node 154b, and transistor 237b coupled to output node 154a) to form a negative feedback loop, thereby enabling offset canceller 230 to iteratively adjust the offset cancellation current in a direction that drives the error signal on mixer output nodes 154a, 154b toward a null value (i.e., zero differential voltage). In one embodiment, a capacitive element 235 is coupled between the gate terminals of the current-control transistors 237a, 237b to maintain the offset cancellation voltage between blanking intervals. In alternative embodiments, separate capacitive elements may be coupled respectively to the gates of the current-controlled transistors 237a, 237b (e.g., each capacitive element coupled between ground and the gate terminal of a respective current-control transistor) to maintain the offset cancellation voltage. More generally, any circuit capable of maintaining the offset cancellation voltage during non-blanking intervals may be substituted for capacitive element 235 in alternative embodiments.
Although summing circuit 240 is depicted as a current-mode summing circuit is in
Adaptive Image Rejection
Assuming that the I and Q mixing paths within zero-IF converter 300 are precisely balanced (i.e., sinusoids generated by the local oscillator 151 are offset by precisely 90° and gains of amplifiers 159a and 159b are equal), the algebraic sum of the in-phase and quadrature components yields the baseband and −2FC spectral components shown at 310 and 312, respectively. That is, the negative frequency contributions to the baseband components of the I and Q output signals are inversions of one another that cancel when summed, leaving only the desired positive frequency contribution 310. Thus, in ideal zero-IF converter 300, multiplication by a precisely-generated complex sinusoid effectively down-converts both the positive and negative frequency components of a video signal centered at ±FC, yielding a desired baseband component 310, and a −2FC component 312 that may be removed by low-pass filter stages 157a and 157b (although
Unfortunately, actual circuit implementations generally yield some degree of phase error in the complex sinusoid and gain imbalance in the output gain stages. Referring to
In one embodiment, undesired image resulting from phase and gain error in the zero-IF converter, is corrected by an adaptive image rejection filter implemented in the IQ balance stage 117 of
y(t)=αx(t)+βx*(t) (1),
where α and β represent the relative proportions of the desired and error signals and are complex functions of the phase and gain errors as follows:
α=[(1−ε/2)e−jφ/2+(1+ε/2)e+jφ/2]/2
β=[(1+ε/2)e−jφ/2−(1−ε/2)e+jφ/2]/2.
Recognizing further that the readily obtainable complex conjugate of the received signal, y*(t), contains an x*(t) component, it follows that by subtracting a properly scaled version of the complex conjugate of the received signal from the received signal itself, the error component of the received signal may be canceled, leaving a linearly scaled version of the desired signal. That is:
y*(t)=αx*x*(t)+β*x(t), so that
(β/α*)y*(t)=βx*(t)+(ββ*/α*)x(t) (2).
Now, combining the simultaneous equations (1) and (2) to cancel the error term β*x(t) yields:
y(t)−(β/α*)y*(t)=(α−ββ*/α*)x(t)=z(t) (3).
Thus, as shown in expression (3), the error signal may be eliminated by taking the complex conjugate of y(t), multiplying by the scaling factor β/α* and then subtracting the result from y(t), leaving z(t), a linearly scaled version of the desired signal, x(t).
However generated, the complex conjugate is supplied to a multiplier 335 within cancellation path 329 where it is multiplied with a β/α* scaling factor received from the adaptation loop 343, thereby producing the desired scaled complex conjugate value, (β/α*)y*(t). The scaled complex conjugate value is supplied to an inverting input of summing circuit 337 where it is subtracted from the input baseband video signal y(t) to produce the desired output signal z(t).
The adaptation loop 331 is provided to generate the scaling factor, β/α*, applied within the cancellation path 329. In the embodiment of
K[n+1]=K[n] +μe*[n]y*[n] (4),
where μ is a scaling factor and e*[n] is the conjugate of the difference signal 344 for a given update. Iterative application of expression (4) can be algebraically shown to cause K, the conjugate of the filter coefficient, to converge to:
K=2α*β*/(ββ*+αα*) (5),
so that the filter coefficient, K* (which may be generated by a conjugate operation in the update equation or through a separate conjugate operation) converges to:
K*=2αβ/(ββ*+αα*) (6).
Because α is significantly larger than β, expression (6) may be simplified to:
K*=2αβ/(αα*)=2β/α, or twice the scaling factor to be applied in the cancellation path. Accordingly, the filter coefficient, K*, is output from the adaptive filter 341 to divider circuit 345 which divides K* by two to yield the β/α* scaling factor applied in the cancellation path 329.
Still referring to
Decoder with Dynamic Frame-Hold
In the embodiment of
Dynamically Disabled Receiver
As discussed above, in reference to
It should be noted that numerous changes may be made to the power manager 440 without departing from the spirit and scope of the invention. For example, the power manager may be implemented by a programmed processor instead of dedicated circuitry. Also, one or more configuration values may be supplied to the power manager 440 to establish the number of h-sync pulses to be skipped, thereby enabling power manager 440 to be configured for operation in accordance with different video standards (e.g., 625 scanline PAL standard vs. 525 scanline NTSC standard). Further, as discussed above, rather than disabling reception of the scanlines of every other video field, reception may be disabled for every Nth scanline.
Electronic Expression of Circuits and/or Processes
It should be noted that the various circuits disclosed herein may be described using computer aided design tools and expressed (or represented), as data and/or instructions embodied in various computer-readable media, in terms of their behavioral, register transfer, logic component, transistor, layout geometries, and/or other characteristics. Formats of files and other objects in which such circuit expressions may be implemented include, but are not limited to, formats supporting behavioral languages such as C, Verilog, and HLDL, formats supporting register level description languages like RTL, and formats supporting geometry description languages such as GDSII, GDSIII, GDSIV, CIF, MEBES and any other suitable formats and languages. Computer-readable media in which such formatted data and/or instructions may be embodied include, but are not limited to, non-volatile storage media in various forms (e.g., optical, magnetic or semiconductor storage media) and carrier waves that may be used to transfer such formatted data and/or instructions through wireless, optical, or wired signaling media or any combination thereof. Examples of transfers of such formatted data and/or instructions by carrier waves include, but are not limited to, transfers (uploads, downloads, e-mail, etc.) over the Internet and/or other computer networks via one or more data transfer protocols (e.g., HTTP, FTP, SMTP, etc.).
When received within a computer system via one or more computer-readable media, such data and/or instruction-based expressions of the above described circuits may be processed by a processing entity (e.g., one or more processors) within the computer system in conjunction with execution of one or more other computer programs including, without limitation, net-list generation programs, place and route programs and the like, to generate a representation or image of a physical manifestation of such circuits. Such representation or image may thereafter be used in device fabrication, for example, by enabling generation of one or more masks that are used to form various components of the circuits in a device fabrication process.
Section headings have been provided in this detailed description for convenience of reference only, and in no way define, limit, construe or describe the scope or extent of such sections. Also, while the invention has been described with reference to specific embodiments thereof, it will be evident that various modifications and changes may be made thereto without departing from the broader spirit and scope of the invention. Accordingly, the specification and drawings are to be regarded in an illustrative rather than a restrictive sense. In the event that provisions of any document incorporated by reference herein are determined to contradict or otherwise be inconsistent with like or related provisions herein, the provisions herein shall control at least for purposes of construing the appended claims.
Claims
1. A video receiver formed within an integrated circuit device, the video receiver comprising:
- a mixing circuit to mix an analog video signal with a sinusoid to generate a frequency-shifted analog video signal; and
- an offset cancellation circuit to obtain a sample of the frequency-shifted analog video signal during a first time interval and, based on the sample, generate an offset cancellation signal that, when summed with the frequency-shifted analog video signal, reduces a substantially time-invariant offset in the frequency-shifted analog video signal.
2. The video receiver of claim 1 wherein the substantially time-invariant offset comprises a direct-current (DC) voltage offset.
3. The video receiver of claim 1 wherein the first time interval is indicated by a signal component of the frequency-shifted analog video signal.
4. The video receiver of claim 1 wherein the first time interval is a blanking interval indicated by the frequency-shifted analog video signal.
5. The video receiver of claim 1 wherein the frequency-shifted analog video signal is a differential video signal, and wherein the offset cancellation circuit comprises a differential amplifier having differential inputs coupled to receive respective component signals of the differential video signal, and differential outputs to generate a differential offset-cancellation voltage having an amplitude in proportion to an amplitude of the substantially time-invariant offset.
6. The video receiver of claim 5 further comprising a signal combination circuit to subtract the offset-cancellation voltage from the differential video signal to reduce the substantially time-invariant offset.
7. The video receiver of claim 1 further comprising an input node to receive the analog video signal and a switch to decouple the input node from an input of the mixing circuit during at least a portion of the first time interval.
8. The video receiver of claim 7 wherein the switch comprises a transistor switch.
9. The video receiver of claim 7 further comprising a timing circuit to assert a control signal during the first time interval to enable the offset cancellation circuit to sample the frequency-shifted analog video signal and to open the switch.
10. A method of operation within an integrated circuit device, the method comprising:
- mixing an analog video signal with a sinusoid to generate a frequency-shifted analog video signal;
- obtaining a sample of the frequency-shifted analog video signal during a first time interval;
- generating an offset cancellation signal based on the sample of the frequency-shifted analog video signal; and
- summing the offset cancellation signal with the frequency-shifted analog video signal to reduce a substantially time-invariant offset in the frequency-shifted analog video signal.
11. The method of claim 10 wherein mixing the analog video signal with a sinusoid comprises mixing the analog video signal with a complex sinusoid having a frequency substantially equal to a carrier frequency of the analog video signal.
12. The method of claim 10 wherein obtaining a sample of the frequency-shifted analog video signal during a first time interval comprises sampling the frequency-shifted analog video signal during a time interval indicated by content of the frequency-shifted analog video signal.
13. The method of claim 10 wherein the first time interval is a blanking interval indicated by a blanking indicator within the frequency-shifted analog video signal.
14. The method of claim 13 wherein the first time interval is a horizontal blanking interval indicated by a horizontal synchronization component of the frequency-shifted analog video signal.
15. The method of claim 13 wherein the first time interval is a vertical blanking interval indicated by a vertical synchronization component of the frequency-shifted analog video signal.
16. The method of claim 10 wherein generating an offset cancellation signal based on the sample of the frequency-shifted analog video signal comprises generating an offset voltage in proportion to an offset voltage present in the sample of the frequency-shifted analog video signal.
17. The method of claim 16 wherein summing the offset cancellation signal with the frequency-shifted analog video signal comprises subtracting the offset voltage from the frequency-shifted analog video signal in a summing circuit.
18. The method of claim 16 wherein summing the offset cancellation signal with the frequency-shifted analog video signal comprises adjusting a current flow that corresponds to the frequency-shifted analog video signal in accordance with the offset cancellation signal.
19. The method of claim 10 further comprising interrupting a signal path used to receive the analog video signal during the first time interval.
20. The method of claim 19 wherein interrupting a signal path used to receive the analog video signal comprises transitioning a transistor switch from a conducting state to a substantially non-conducting state.
21. A video receiver comprising:
- means for mixing an analog video signal with a sinusoid to generate a frequency-shifted analog video signal;
- means for obtaining a sample of the frequency-shifted analog video signal during a first time interval;
- means for generating an offset cancellation signal based on the sample of the frequency-shifted analog video signal; and
- means for summing the offset cancellation signal with the frequency-shifted analog video signal to reduce an offset in the frequency-shifted analog video signal.
Type: Application
Filed: May 2, 2005
Publication Date: Nov 3, 2005
Patent Grant number: 7505086
Inventors: Weijie Yun (San Jose, CA), Samuel Sheng (Los Gatos, CA)
Application Number: 11/120,378